ds.c 23 KB

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  1. /* ds.c: Domain Services driver for Logical Domains
  2. *
  3. * Copyright (C) 2007 David S. Miller <davem@davemloft.net>
  4. */
  5. #include <linux/kernel.h>
  6. #include <linux/module.h>
  7. #include <linux/types.h>
  8. #include <linux/module.h>
  9. #include <linux/string.h>
  10. #include <linux/slab.h>
  11. #include <linux/sched.h>
  12. #include <linux/delay.h>
  13. #include <linux/mutex.h>
  14. #include <linux/kthread.h>
  15. #include <linux/cpu.h>
  16. #include <asm/ldc.h>
  17. #include <asm/vio.h>
  18. #include <asm/power.h>
  19. #include <asm/mdesc.h>
  20. #include <asm/head.h>
  21. #include <asm/irq.h>
  22. #define DRV_MODULE_NAME "ds"
  23. #define PFX DRV_MODULE_NAME ": "
  24. #define DRV_MODULE_VERSION "1.0"
  25. #define DRV_MODULE_RELDATE "Jul 11, 2007"
  26. static char version[] __devinitdata =
  27. DRV_MODULE_NAME ".c:v" DRV_MODULE_VERSION " (" DRV_MODULE_RELDATE ")\n";
  28. MODULE_AUTHOR("David S. Miller (davem@davemloft.net)");
  29. MODULE_DESCRIPTION("Sun LDOM domain services driver");
  30. MODULE_LICENSE("GPL");
  31. MODULE_VERSION(DRV_MODULE_VERSION);
  32. struct ds_msg_tag {
  33. __u32 type;
  34. #define DS_INIT_REQ 0x00
  35. #define DS_INIT_ACK 0x01
  36. #define DS_INIT_NACK 0x02
  37. #define DS_REG_REQ 0x03
  38. #define DS_REG_ACK 0x04
  39. #define DS_REG_NACK 0x05
  40. #define DS_UNREG_REQ 0x06
  41. #define DS_UNREG_ACK 0x07
  42. #define DS_UNREG_NACK 0x08
  43. #define DS_DATA 0x09
  44. #define DS_NACK 0x0a
  45. __u32 len;
  46. };
  47. /* Result codes */
  48. #define DS_OK 0x00
  49. #define DS_REG_VER_NACK 0x01
  50. #define DS_REG_DUP 0x02
  51. #define DS_INV_HDL 0x03
  52. #define DS_TYPE_UNKNOWN 0x04
  53. struct ds_version {
  54. __u16 major;
  55. __u16 minor;
  56. };
  57. struct ds_ver_req {
  58. struct ds_msg_tag tag;
  59. struct ds_version ver;
  60. };
  61. struct ds_ver_ack {
  62. struct ds_msg_tag tag;
  63. __u16 minor;
  64. };
  65. struct ds_ver_nack {
  66. struct ds_msg_tag tag;
  67. __u16 major;
  68. };
  69. struct ds_reg_req {
  70. struct ds_msg_tag tag;
  71. __u64 handle;
  72. __u16 major;
  73. __u16 minor;
  74. char svc_id[0];
  75. };
  76. struct ds_reg_ack {
  77. struct ds_msg_tag tag;
  78. __u64 handle;
  79. __u16 minor;
  80. };
  81. struct ds_reg_nack {
  82. struct ds_msg_tag tag;
  83. __u64 handle;
  84. __u16 major;
  85. };
  86. struct ds_unreg_req {
  87. struct ds_msg_tag tag;
  88. __u64 handle;
  89. };
  90. struct ds_unreg_ack {
  91. struct ds_msg_tag tag;
  92. __u64 handle;
  93. };
  94. struct ds_unreg_nack {
  95. struct ds_msg_tag tag;
  96. __u64 handle;
  97. };
  98. struct ds_data {
  99. struct ds_msg_tag tag;
  100. __u64 handle;
  101. };
  102. struct ds_data_nack {
  103. struct ds_msg_tag tag;
  104. __u64 handle;
  105. __u64 result;
  106. };
  107. struct ds_cap_state {
  108. __u64 handle;
  109. void (*data)(struct ldc_channel *lp,
  110. struct ds_cap_state *cp,
  111. void *buf, int len);
  112. const char *service_id;
  113. u8 state;
  114. #define CAP_STATE_UNKNOWN 0x00
  115. #define CAP_STATE_REG_SENT 0x01
  116. #define CAP_STATE_REGISTERED 0x02
  117. };
  118. static void md_update_data(struct ldc_channel *lp, struct ds_cap_state *cp,
  119. void *buf, int len);
  120. static void domain_shutdown_data(struct ldc_channel *lp,
  121. struct ds_cap_state *cp,
  122. void *buf, int len);
  123. static void domain_panic_data(struct ldc_channel *lp,
  124. struct ds_cap_state *cp,
  125. void *buf, int len);
  126. #ifdef CONFIG_HOTPLUG_CPU
  127. static void dr_cpu_data(struct ldc_channel *lp,
  128. struct ds_cap_state *cp,
  129. void *buf, int len);
  130. #endif
  131. static void ds_pri_data(struct ldc_channel *lp,
  132. struct ds_cap_state *cp,
  133. void *buf, int len);
  134. static void ds_var_data(struct ldc_channel *lp,
  135. struct ds_cap_state *cp,
  136. void *buf, int len);
  137. struct ds_cap_state ds_states[] = {
  138. {
  139. .service_id = "md-update",
  140. .data = md_update_data,
  141. },
  142. {
  143. .service_id = "domain-shutdown",
  144. .data = domain_shutdown_data,
  145. },
  146. {
  147. .service_id = "domain-panic",
  148. .data = domain_panic_data,
  149. },
  150. #ifdef CONFIG_HOTPLUG_CPU
  151. {
  152. .service_id = "dr-cpu",
  153. .data = dr_cpu_data,
  154. },
  155. #endif
  156. {
  157. .service_id = "pri",
  158. .data = ds_pri_data,
  159. },
  160. {
  161. .service_id = "var-config",
  162. .data = ds_var_data,
  163. },
  164. {
  165. .service_id = "var-config-backup",
  166. .data = ds_var_data,
  167. },
  168. };
  169. static DEFINE_SPINLOCK(ds_lock);
  170. struct ds_info {
  171. struct ldc_channel *lp;
  172. u8 hs_state;
  173. #define DS_HS_START 0x01
  174. #define DS_HS_DONE 0x02
  175. void *rcv_buf;
  176. int rcv_buf_len;
  177. };
  178. static struct ds_info *ds_info;
  179. static struct ds_cap_state *find_cap(u64 handle)
  180. {
  181. unsigned int index = handle >> 32;
  182. if (index >= ARRAY_SIZE(ds_states))
  183. return NULL;
  184. return &ds_states[index];
  185. }
  186. static struct ds_cap_state *find_cap_by_string(const char *name)
  187. {
  188. int i;
  189. for (i = 0; i < ARRAY_SIZE(ds_states); i++) {
  190. if (strcmp(ds_states[i].service_id, name))
  191. continue;
  192. return &ds_states[i];
  193. }
  194. return NULL;
  195. }
  196. static int __ds_send(struct ldc_channel *lp, void *data, int len)
  197. {
  198. int err, limit = 1000;
  199. err = -EINVAL;
  200. while (limit-- > 0) {
  201. err = ldc_write(lp, data, len);
  202. if (!err || (err != -EAGAIN))
  203. break;
  204. udelay(1);
  205. }
  206. return err;
  207. }
  208. static int ds_send(struct ldc_channel *lp, void *data, int len)
  209. {
  210. unsigned long flags;
  211. int err;
  212. spin_lock_irqsave(&ds_lock, flags);
  213. err = __ds_send(lp, data, len);
  214. spin_unlock_irqrestore(&ds_lock, flags);
  215. return err;
  216. }
  217. struct ds_md_update_req {
  218. __u64 req_num;
  219. };
  220. struct ds_md_update_res {
  221. __u64 req_num;
  222. __u32 result;
  223. };
  224. static void md_update_data(struct ldc_channel *lp,
  225. struct ds_cap_state *dp,
  226. void *buf, int len)
  227. {
  228. struct ds_data *dpkt = buf;
  229. struct ds_md_update_req *rp;
  230. struct {
  231. struct ds_data data;
  232. struct ds_md_update_res res;
  233. } pkt;
  234. rp = (struct ds_md_update_req *) (dpkt + 1);
  235. printk(KERN_INFO PFX "Machine description update.\n");
  236. mdesc_update();
  237. memset(&pkt, 0, sizeof(pkt));
  238. pkt.data.tag.type = DS_DATA;
  239. pkt.data.tag.len = sizeof(pkt) - sizeof(struct ds_msg_tag);
  240. pkt.data.handle = dp->handle;
  241. pkt.res.req_num = rp->req_num;
  242. pkt.res.result = DS_OK;
  243. ds_send(lp, &pkt, sizeof(pkt));
  244. }
  245. struct ds_shutdown_req {
  246. __u64 req_num;
  247. __u32 ms_delay;
  248. };
  249. struct ds_shutdown_res {
  250. __u64 req_num;
  251. __u32 result;
  252. char reason[1];
  253. };
  254. static void domain_shutdown_data(struct ldc_channel *lp,
  255. struct ds_cap_state *dp,
  256. void *buf, int len)
  257. {
  258. struct ds_data *dpkt = buf;
  259. struct ds_shutdown_req *rp;
  260. struct {
  261. struct ds_data data;
  262. struct ds_shutdown_res res;
  263. } pkt;
  264. rp = (struct ds_shutdown_req *) (dpkt + 1);
  265. printk(KERN_ALERT PFX "Shutdown request from "
  266. "LDOM manager received.\n");
  267. memset(&pkt, 0, sizeof(pkt));
  268. pkt.data.tag.type = DS_DATA;
  269. pkt.data.tag.len = sizeof(pkt) - sizeof(struct ds_msg_tag);
  270. pkt.data.handle = dp->handle;
  271. pkt.res.req_num = rp->req_num;
  272. pkt.res.result = DS_OK;
  273. pkt.res.reason[0] = 0;
  274. ds_send(lp, &pkt, sizeof(pkt));
  275. wake_up_powerd();
  276. }
  277. struct ds_panic_req {
  278. __u64 req_num;
  279. };
  280. struct ds_panic_res {
  281. __u64 req_num;
  282. __u32 result;
  283. char reason[1];
  284. };
  285. static void domain_panic_data(struct ldc_channel *lp,
  286. struct ds_cap_state *dp,
  287. void *buf, int len)
  288. {
  289. struct ds_data *dpkt = buf;
  290. struct ds_panic_req *rp;
  291. struct {
  292. struct ds_data data;
  293. struct ds_panic_res res;
  294. } pkt;
  295. rp = (struct ds_panic_req *) (dpkt + 1);
  296. printk(KERN_ALERT PFX "Panic request from "
  297. "LDOM manager received.\n");
  298. memset(&pkt, 0, sizeof(pkt));
  299. pkt.data.tag.type = DS_DATA;
  300. pkt.data.tag.len = sizeof(pkt) - sizeof(struct ds_msg_tag);
  301. pkt.data.handle = dp->handle;
  302. pkt.res.req_num = rp->req_num;
  303. pkt.res.result = DS_OK;
  304. pkt.res.reason[0] = 0;
  305. ds_send(lp, &pkt, sizeof(pkt));
  306. panic("PANIC requested by LDOM manager.");
  307. }
  308. #ifdef CONFIG_HOTPLUG_CPU
  309. struct dr_cpu_tag {
  310. __u64 req_num;
  311. __u32 type;
  312. #define DR_CPU_CONFIGURE 0x43
  313. #define DR_CPU_UNCONFIGURE 0x55
  314. #define DR_CPU_FORCE_UNCONFIGURE 0x46
  315. #define DR_CPU_STATUS 0x53
  316. /* Responses */
  317. #define DR_CPU_OK 0x6f
  318. #define DR_CPU_ERROR 0x65
  319. __u32 num_records;
  320. };
  321. struct dr_cpu_resp_entry {
  322. __u32 cpu;
  323. __u32 result;
  324. #define DR_CPU_RES_OK 0x00
  325. #define DR_CPU_RES_FAILURE 0x01
  326. #define DR_CPU_RES_BLOCKED 0x02
  327. #define DR_CPU_RES_CPU_NOT_RESPONDING 0x03
  328. #define DR_CPU_RES_NOT_IN_MD 0x04
  329. __u32 stat;
  330. #define DR_CPU_STAT_NOT_PRESENT 0x00
  331. #define DR_CPU_STAT_UNCONFIGURED 0x01
  332. #define DR_CPU_STAT_CONFIGURED 0x02
  333. __u32 str_off;
  334. };
  335. static void __dr_cpu_send_error(struct ds_cap_state *cp, struct ds_data *data)
  336. {
  337. struct dr_cpu_tag *tag = (struct dr_cpu_tag *) (data + 1);
  338. struct ds_info *dp = ds_info;
  339. struct {
  340. struct ds_data data;
  341. struct dr_cpu_tag tag;
  342. } pkt;
  343. int msg_len;
  344. memset(&pkt, 0, sizeof(pkt));
  345. pkt.data.tag.type = DS_DATA;
  346. pkt.data.handle = cp->handle;
  347. pkt.tag.req_num = tag->req_num;
  348. pkt.tag.type = DR_CPU_ERROR;
  349. pkt.tag.num_records = 0;
  350. msg_len = (sizeof(struct ds_data) +
  351. sizeof(struct dr_cpu_tag));
  352. pkt.data.tag.len = msg_len - sizeof(struct ds_msg_tag);
  353. __ds_send(dp->lp, &pkt, msg_len);
  354. }
  355. static void dr_cpu_send_error(struct ds_cap_state *cp, struct ds_data *data)
  356. {
  357. unsigned long flags;
  358. spin_lock_irqsave(&ds_lock, flags);
  359. __dr_cpu_send_error(cp, data);
  360. spin_unlock_irqrestore(&ds_lock, flags);
  361. }
  362. #define CPU_SENTINEL 0xffffffff
  363. static void purge_dups(u32 *list, u32 num_ents)
  364. {
  365. unsigned int i;
  366. for (i = 0; i < num_ents; i++) {
  367. u32 cpu = list[i];
  368. unsigned int j;
  369. if (cpu == CPU_SENTINEL)
  370. continue;
  371. for (j = i + 1; j < num_ents; j++) {
  372. if (list[j] == cpu)
  373. list[j] = CPU_SENTINEL;
  374. }
  375. }
  376. }
  377. static int dr_cpu_size_response(int ncpus)
  378. {
  379. return (sizeof(struct ds_data) +
  380. sizeof(struct dr_cpu_tag) +
  381. (sizeof(struct dr_cpu_resp_entry) * ncpus));
  382. }
  383. static void dr_cpu_init_response(struct ds_data *resp, u64 req_num,
  384. u64 handle, int resp_len, int ncpus,
  385. cpumask_t *mask, u32 default_stat)
  386. {
  387. struct dr_cpu_resp_entry *ent;
  388. struct dr_cpu_tag *tag;
  389. int i, cpu;
  390. tag = (struct dr_cpu_tag *) (resp + 1);
  391. ent = (struct dr_cpu_resp_entry *) (tag + 1);
  392. resp->tag.type = DS_DATA;
  393. resp->tag.len = resp_len - sizeof(struct ds_msg_tag);
  394. resp->handle = handle;
  395. tag->req_num = req_num;
  396. tag->type = DR_CPU_OK;
  397. tag->num_records = ncpus;
  398. i = 0;
  399. for_each_cpu_mask(cpu, *mask) {
  400. ent[i].cpu = cpu;
  401. ent[i].result = DR_CPU_RES_OK;
  402. ent[i].stat = default_stat;
  403. i++;
  404. }
  405. BUG_ON(i != ncpus);
  406. }
  407. static void dr_cpu_mark(struct ds_data *resp, int cpu, int ncpus,
  408. u32 res, u32 stat)
  409. {
  410. struct dr_cpu_resp_entry *ent;
  411. struct dr_cpu_tag *tag;
  412. int i;
  413. tag = (struct dr_cpu_tag *) (resp + 1);
  414. ent = (struct dr_cpu_resp_entry *) (tag + 1);
  415. for (i = 0; i < ncpus; i++) {
  416. if (ent[i].cpu != cpu)
  417. continue;
  418. ent[i].result = res;
  419. ent[i].stat = stat;
  420. break;
  421. }
  422. }
  423. static int dr_cpu_configure(struct ds_cap_state *cp, u64 req_num,
  424. cpumask_t *mask)
  425. {
  426. struct ds_data *resp;
  427. int resp_len, ncpus, cpu;
  428. unsigned long flags;
  429. ncpus = cpus_weight(*mask);
  430. resp_len = dr_cpu_size_response(ncpus);
  431. resp = kzalloc(resp_len, GFP_KERNEL);
  432. if (!resp)
  433. return -ENOMEM;
  434. dr_cpu_init_response(resp, req_num, cp->handle,
  435. resp_len, ncpus, mask,
  436. DR_CPU_STAT_CONFIGURED);
  437. mdesc_fill_in_cpu_data(*mask);
  438. for_each_cpu_mask(cpu, *mask) {
  439. int err;
  440. printk(KERN_INFO PFX "Starting cpu %d...\n", cpu);
  441. err = cpu_up(cpu);
  442. if (err) {
  443. __u32 res = DR_CPU_RES_FAILURE;
  444. __u32 stat = DR_CPU_STAT_UNCONFIGURED;
  445. if (!cpu_present(cpu)) {
  446. /* CPU not present in MD */
  447. res = DR_CPU_RES_NOT_IN_MD;
  448. stat = DR_CPU_STAT_NOT_PRESENT;
  449. } else if (err == -ENODEV) {
  450. /* CPU did not call in successfully */
  451. res = DR_CPU_RES_CPU_NOT_RESPONDING;
  452. }
  453. printk(KERN_INFO PFX "CPU startup failed err=%d\n",
  454. err);
  455. dr_cpu_mark(resp, cpu, ncpus, res, stat);
  456. }
  457. }
  458. spin_lock_irqsave(&ds_lock, flags);
  459. __ds_send(ds_info->lp, resp, resp_len);
  460. spin_unlock_irqrestore(&ds_lock, flags);
  461. kfree(resp);
  462. /* Redistribute IRQs, taking into account the new cpus. */
  463. fixup_irqs();
  464. return 0;
  465. }
  466. static int dr_cpu_unconfigure(struct ds_cap_state *cp, u64 req_num,
  467. cpumask_t *mask)
  468. {
  469. struct ds_data *resp;
  470. int resp_len, ncpus, cpu;
  471. unsigned long flags;
  472. ncpus = cpus_weight(*mask);
  473. resp_len = dr_cpu_size_response(ncpus);
  474. resp = kzalloc(resp_len, GFP_KERNEL);
  475. if (!resp)
  476. return -ENOMEM;
  477. dr_cpu_init_response(resp, req_num, cp->handle,
  478. resp_len, ncpus, mask,
  479. DR_CPU_STAT_UNCONFIGURED);
  480. for_each_cpu_mask(cpu, *mask) {
  481. int err;
  482. printk(KERN_INFO PFX "CPU[%d]: Shutting down cpu %d...\n",
  483. smp_processor_id(), cpu);
  484. err = cpu_down(cpu);
  485. if (err)
  486. dr_cpu_mark(resp, cpu, ncpus,
  487. DR_CPU_RES_FAILURE,
  488. DR_CPU_STAT_CONFIGURED);
  489. }
  490. spin_lock_irqsave(&ds_lock, flags);
  491. __ds_send(ds_info->lp, resp, resp_len);
  492. spin_unlock_irqrestore(&ds_lock, flags);
  493. kfree(resp);
  494. return 0;
  495. }
  496. static void dr_cpu_data(struct ldc_channel *lp,
  497. struct ds_cap_state *cp,
  498. void *buf, int len)
  499. {
  500. struct ds_data *data = buf;
  501. struct dr_cpu_tag *tag = (struct dr_cpu_tag *) (data + 1);
  502. u32 *cpu_list = (u32 *) (tag + 1);
  503. u64 req_num = tag->req_num;
  504. cpumask_t mask;
  505. unsigned int i;
  506. int err;
  507. switch (tag->type) {
  508. case DR_CPU_CONFIGURE:
  509. case DR_CPU_UNCONFIGURE:
  510. case DR_CPU_FORCE_UNCONFIGURE:
  511. break;
  512. default:
  513. dr_cpu_send_error(cp, data);
  514. return;
  515. }
  516. purge_dups(cpu_list, tag->num_records);
  517. cpus_clear(mask);
  518. for (i = 0; i < tag->num_records; i++) {
  519. if (cpu_list[i] == CPU_SENTINEL)
  520. continue;
  521. if (cpu_list[i] < NR_CPUS)
  522. cpu_set(cpu_list[i], mask);
  523. }
  524. if (tag->type == DR_CPU_CONFIGURE)
  525. err = dr_cpu_configure(cp, req_num, &mask);
  526. else
  527. err = dr_cpu_unconfigure(cp, req_num, &mask);
  528. if (err)
  529. dr_cpu_send_error(cp, data);
  530. }
  531. #endif /* CONFIG_HOTPLUG_CPU */
  532. struct ds_pri_msg {
  533. __u64 req_num;
  534. __u64 type;
  535. #define DS_PRI_REQUEST 0x00
  536. #define DS_PRI_DATA 0x01
  537. #define DS_PRI_UPDATE 0x02
  538. };
  539. static void ds_pri_data(struct ldc_channel *lp,
  540. struct ds_cap_state *dp,
  541. void *buf, int len)
  542. {
  543. struct ds_data *dpkt = buf;
  544. struct ds_pri_msg *rp;
  545. rp = (struct ds_pri_msg *) (dpkt + 1);
  546. printk(KERN_INFO PFX "PRI REQ [%lx:%lx], len=%d\n",
  547. rp->req_num, rp->type, len);
  548. }
  549. struct ds_var_hdr {
  550. __u32 type;
  551. #define DS_VAR_SET_REQ 0x00
  552. #define DS_VAR_DELETE_REQ 0x01
  553. #define DS_VAR_SET_RESP 0x02
  554. #define DS_VAR_DELETE_RESP 0x03
  555. };
  556. struct ds_var_set_msg {
  557. struct ds_var_hdr hdr;
  558. char name_and_value[0];
  559. };
  560. struct ds_var_delete_msg {
  561. struct ds_var_hdr hdr;
  562. char name[0];
  563. };
  564. struct ds_var_resp {
  565. struct ds_var_hdr hdr;
  566. __u32 result;
  567. #define DS_VAR_SUCCESS 0x00
  568. #define DS_VAR_NO_SPACE 0x01
  569. #define DS_VAR_INVALID_VAR 0x02
  570. #define DS_VAR_INVALID_VAL 0x03
  571. #define DS_VAR_NOT_PRESENT 0x04
  572. };
  573. static DEFINE_MUTEX(ds_var_mutex);
  574. static int ds_var_doorbell;
  575. static int ds_var_response;
  576. static void ds_var_data(struct ldc_channel *lp,
  577. struct ds_cap_state *dp,
  578. void *buf, int len)
  579. {
  580. struct ds_data *dpkt = buf;
  581. struct ds_var_resp *rp;
  582. rp = (struct ds_var_resp *) (dpkt + 1);
  583. if (rp->hdr.type != DS_VAR_SET_RESP &&
  584. rp->hdr.type != DS_VAR_DELETE_RESP)
  585. return;
  586. ds_var_response = rp->result;
  587. wmb();
  588. ds_var_doorbell = 1;
  589. }
  590. void ldom_set_var(const char *var, const char *value)
  591. {
  592. struct ds_info *dp = ds_info;
  593. struct ds_cap_state *cp;
  594. cp = find_cap_by_string("var-config");
  595. if (cp->state != CAP_STATE_REGISTERED)
  596. cp = find_cap_by_string("var-config-backup");
  597. if (cp->state == CAP_STATE_REGISTERED) {
  598. union {
  599. struct {
  600. struct ds_data data;
  601. struct ds_var_set_msg msg;
  602. } header;
  603. char all[512];
  604. } pkt;
  605. unsigned long flags;
  606. char *base, *p;
  607. int msg_len, loops;
  608. memset(&pkt, 0, sizeof(pkt));
  609. pkt.header.data.tag.type = DS_DATA;
  610. pkt.header.data.handle = cp->handle;
  611. pkt.header.msg.hdr.type = DS_VAR_SET_REQ;
  612. base = p = &pkt.header.msg.name_and_value[0];
  613. strcpy(p, var);
  614. p += strlen(var) + 1;
  615. strcpy(p, value);
  616. p += strlen(value) + 1;
  617. msg_len = (sizeof(struct ds_data) +
  618. sizeof(struct ds_var_set_msg) +
  619. (p - base));
  620. msg_len = (msg_len + 3) & ~3;
  621. pkt.header.data.tag.len = msg_len - sizeof(struct ds_msg_tag);
  622. mutex_lock(&ds_var_mutex);
  623. spin_lock_irqsave(&ds_lock, flags);
  624. ds_var_doorbell = 0;
  625. ds_var_response = -1;
  626. __ds_send(dp->lp, &pkt, msg_len);
  627. spin_unlock_irqrestore(&ds_lock, flags);
  628. loops = 1000;
  629. while (ds_var_doorbell == 0) {
  630. if (loops-- < 0)
  631. break;
  632. barrier();
  633. udelay(100);
  634. }
  635. mutex_unlock(&ds_var_mutex);
  636. if (ds_var_doorbell == 0 ||
  637. ds_var_response != DS_VAR_SUCCESS)
  638. printk(KERN_ERR PFX "var-config [%s:%s] "
  639. "failed, response(%d).\n",
  640. var, value,
  641. ds_var_response);
  642. } else {
  643. printk(KERN_ERR PFX "var-config not registered so "
  644. "could not set (%s) variable to (%s).\n",
  645. var, value);
  646. }
  647. }
  648. void ldom_reboot(const char *boot_command)
  649. {
  650. /* Don't bother with any of this if the boot_command
  651. * is empty.
  652. */
  653. if (boot_command && strlen(boot_command)) {
  654. char full_boot_str[256];
  655. strcpy(full_boot_str, "boot ");
  656. strcpy(full_boot_str + strlen("boot "), boot_command);
  657. ldom_set_var("reboot-command", full_boot_str);
  658. }
  659. sun4v_mach_sir();
  660. }
  661. void ldom_power_off(void)
  662. {
  663. sun4v_mach_exit(0);
  664. }
  665. static void ds_conn_reset(struct ds_info *dp)
  666. {
  667. printk(KERN_ERR PFX "ds_conn_reset() from %p\n",
  668. __builtin_return_address(0));
  669. }
  670. static int register_services(struct ds_info *dp)
  671. {
  672. struct ldc_channel *lp = dp->lp;
  673. int i;
  674. for (i = 0; i < ARRAY_SIZE(ds_states); i++) {
  675. struct {
  676. struct ds_reg_req req;
  677. u8 id_buf[256];
  678. } pbuf;
  679. struct ds_cap_state *cp = &ds_states[i];
  680. int err, msg_len;
  681. u64 new_count;
  682. if (cp->state == CAP_STATE_REGISTERED)
  683. continue;
  684. new_count = sched_clock() & 0xffffffff;
  685. cp->handle = ((u64) i << 32) | new_count;
  686. msg_len = (sizeof(struct ds_reg_req) +
  687. strlen(cp->service_id));
  688. memset(&pbuf, 0, sizeof(pbuf));
  689. pbuf.req.tag.type = DS_REG_REQ;
  690. pbuf.req.tag.len = (msg_len - sizeof(struct ds_msg_tag));
  691. pbuf.req.handle = cp->handle;
  692. pbuf.req.major = 1;
  693. pbuf.req.minor = 0;
  694. strcpy(pbuf.req.svc_id, cp->service_id);
  695. err = __ds_send(lp, &pbuf, msg_len);
  696. if (err > 0)
  697. cp->state = CAP_STATE_REG_SENT;
  698. }
  699. return 0;
  700. }
  701. static int ds_handshake(struct ds_info *dp, struct ds_msg_tag *pkt)
  702. {
  703. if (dp->hs_state == DS_HS_START) {
  704. if (pkt->type != DS_INIT_ACK)
  705. goto conn_reset;
  706. dp->hs_state = DS_HS_DONE;
  707. return register_services(dp);
  708. }
  709. if (dp->hs_state != DS_HS_DONE)
  710. goto conn_reset;
  711. if (pkt->type == DS_REG_ACK) {
  712. struct ds_reg_ack *ap = (struct ds_reg_ack *) pkt;
  713. struct ds_cap_state *cp = find_cap(ap->handle);
  714. if (!cp) {
  715. printk(KERN_ERR PFX "REG ACK for unknown handle %lx\n",
  716. ap->handle);
  717. return 0;
  718. }
  719. printk(KERN_INFO PFX "Registered %s service.\n",
  720. cp->service_id);
  721. cp->state = CAP_STATE_REGISTERED;
  722. } else if (pkt->type == DS_REG_NACK) {
  723. struct ds_reg_nack *np = (struct ds_reg_nack *) pkt;
  724. struct ds_cap_state *cp = find_cap(np->handle);
  725. if (!cp) {
  726. printk(KERN_ERR PFX "REG NACK for "
  727. "unknown handle %lx\n",
  728. np->handle);
  729. return 0;
  730. }
  731. printk(KERN_INFO PFX "Could not register %s service\n",
  732. cp->service_id);
  733. cp->state = CAP_STATE_UNKNOWN;
  734. }
  735. return 0;
  736. conn_reset:
  737. ds_conn_reset(dp);
  738. return -ECONNRESET;
  739. }
  740. static void __send_ds_nack(struct ds_info *dp, u64 handle)
  741. {
  742. struct ds_data_nack nack = {
  743. .tag = {
  744. .type = DS_NACK,
  745. .len = (sizeof(struct ds_data_nack) -
  746. sizeof(struct ds_msg_tag)),
  747. },
  748. .handle = handle,
  749. .result = DS_INV_HDL,
  750. };
  751. __ds_send(dp->lp, &nack, sizeof(nack));
  752. }
  753. static LIST_HEAD(ds_work_list);
  754. static DECLARE_WAIT_QUEUE_HEAD(ds_wait);
  755. struct ds_queue_entry {
  756. struct list_head list;
  757. int req_len;
  758. int __pad;
  759. u64 req[0];
  760. };
  761. static void process_ds_work(void)
  762. {
  763. struct ds_queue_entry *qp, *tmp;
  764. static struct ds_info *dp;
  765. unsigned long flags;
  766. LIST_HEAD(todo);
  767. spin_lock_irqsave(&ds_lock, flags);
  768. list_splice(&ds_work_list, &todo);
  769. INIT_LIST_HEAD(&ds_work_list);
  770. spin_unlock_irqrestore(&ds_lock, flags);
  771. dp = ds_info;
  772. list_for_each_entry_safe(qp, tmp, &todo, list) {
  773. struct ds_data *dpkt = (struct ds_data *) qp->req;
  774. struct ds_cap_state *cp = find_cap(dpkt->handle);
  775. int req_len = qp->req_len;
  776. if (!cp) {
  777. printk(KERN_ERR PFX "Data for unknown handle %lu\n",
  778. dpkt->handle);
  779. spin_lock_irqsave(&ds_lock, flags);
  780. __send_ds_nack(dp, dpkt->handle);
  781. spin_unlock_irqrestore(&ds_lock, flags);
  782. } else {
  783. cp->data(dp->lp, cp, dpkt, req_len);
  784. }
  785. list_del(&qp->list);
  786. kfree(qp);
  787. }
  788. }
  789. static int ds_thread(void *__unused)
  790. {
  791. DEFINE_WAIT(wait);
  792. while (1) {
  793. prepare_to_wait(&ds_wait, &wait, TASK_INTERRUPTIBLE);
  794. if (list_empty(&ds_work_list))
  795. schedule();
  796. finish_wait(&ds_wait, &wait);
  797. if (kthread_should_stop())
  798. break;
  799. process_ds_work();
  800. }
  801. return 0;
  802. }
  803. static int ds_data(struct ds_info *dp, struct ds_msg_tag *pkt, int len)
  804. {
  805. struct ds_data *dpkt = (struct ds_data *) pkt;
  806. struct ds_queue_entry *qp;
  807. qp = kmalloc(sizeof(struct ds_queue_entry) + len, GFP_ATOMIC);
  808. if (!qp) {
  809. __send_ds_nack(dp, dpkt->handle);
  810. } else {
  811. memcpy(&qp->req, pkt, len);
  812. list_add_tail(&qp->list, &ds_work_list);
  813. wake_up(&ds_wait);
  814. }
  815. return 0;
  816. }
  817. static void ds_up(struct ds_info *dp)
  818. {
  819. struct ldc_channel *lp = dp->lp;
  820. struct ds_ver_req req;
  821. int err;
  822. req.tag.type = DS_INIT_REQ;
  823. req.tag.len = sizeof(req) - sizeof(struct ds_msg_tag);
  824. req.ver.major = 1;
  825. req.ver.minor = 0;
  826. err = __ds_send(lp, &req, sizeof(req));
  827. if (err > 0)
  828. dp->hs_state = DS_HS_START;
  829. }
  830. static void ds_event(void *arg, int event)
  831. {
  832. struct ds_info *dp = arg;
  833. struct ldc_channel *lp = dp->lp;
  834. unsigned long flags;
  835. int err;
  836. spin_lock_irqsave(&ds_lock, flags);
  837. if (event == LDC_EVENT_UP) {
  838. ds_up(dp);
  839. spin_unlock_irqrestore(&ds_lock, flags);
  840. return;
  841. }
  842. if (event != LDC_EVENT_DATA_READY) {
  843. printk(KERN_WARNING PFX "Unexpected LDC event %d\n", event);
  844. spin_unlock_irqrestore(&ds_lock, flags);
  845. return;
  846. }
  847. err = 0;
  848. while (1) {
  849. struct ds_msg_tag *tag;
  850. err = ldc_read(lp, dp->rcv_buf, sizeof(*tag));
  851. if (unlikely(err < 0)) {
  852. if (err == -ECONNRESET)
  853. ds_conn_reset(dp);
  854. break;
  855. }
  856. if (err == 0)
  857. break;
  858. tag = dp->rcv_buf;
  859. err = ldc_read(lp, tag + 1, tag->len);
  860. if (unlikely(err < 0)) {
  861. if (err == -ECONNRESET)
  862. ds_conn_reset(dp);
  863. break;
  864. }
  865. if (err < tag->len)
  866. break;
  867. if (tag->type < DS_DATA)
  868. err = ds_handshake(dp, dp->rcv_buf);
  869. else
  870. err = ds_data(dp, dp->rcv_buf,
  871. sizeof(*tag) + err);
  872. if (err == -ECONNRESET)
  873. break;
  874. }
  875. spin_unlock_irqrestore(&ds_lock, flags);
  876. }
  877. static int __devinit ds_probe(struct vio_dev *vdev,
  878. const struct vio_device_id *id)
  879. {
  880. static int ds_version_printed;
  881. struct ldc_channel_config ds_cfg = {
  882. .event = ds_event,
  883. .mtu = 4096,
  884. .mode = LDC_MODE_STREAM,
  885. };
  886. struct ldc_channel *lp;
  887. struct ds_info *dp;
  888. int err;
  889. if (ds_version_printed++ == 0)
  890. printk(KERN_INFO "%s", version);
  891. dp = kzalloc(sizeof(*dp), GFP_KERNEL);
  892. err = -ENOMEM;
  893. if (!dp)
  894. goto out_err;
  895. dp->rcv_buf = kzalloc(4096, GFP_KERNEL);
  896. if (!dp->rcv_buf)
  897. goto out_free_dp;
  898. dp->rcv_buf_len = 4096;
  899. ds_cfg.tx_irq = vdev->tx_irq;
  900. ds_cfg.rx_irq = vdev->rx_irq;
  901. lp = ldc_alloc(vdev->channel_id, &ds_cfg, dp);
  902. if (IS_ERR(lp)) {
  903. err = PTR_ERR(lp);
  904. goto out_free_rcv_buf;
  905. }
  906. dp->lp = lp;
  907. err = ldc_bind(lp, "DS");
  908. if (err)
  909. goto out_free_ldc;
  910. ds_info = dp;
  911. start_powerd();
  912. return err;
  913. out_free_ldc:
  914. ldc_free(dp->lp);
  915. out_free_rcv_buf:
  916. kfree(dp->rcv_buf);
  917. out_free_dp:
  918. kfree(dp);
  919. out_err:
  920. return err;
  921. }
  922. static int ds_remove(struct vio_dev *vdev)
  923. {
  924. return 0;
  925. }
  926. static struct vio_device_id ds_match[] = {
  927. {
  928. .type = "domain-services-port",
  929. },
  930. {},
  931. };
  932. static struct vio_driver ds_driver = {
  933. .id_table = ds_match,
  934. .probe = ds_probe,
  935. .remove = ds_remove,
  936. .driver = {
  937. .name = "ds",
  938. .owner = THIS_MODULE,
  939. }
  940. };
  941. static int __init ds_init(void)
  942. {
  943. int i;
  944. for (i = 0; i < ARRAY_SIZE(ds_states); i++)
  945. ds_states[i].handle = ((u64)i << 32);
  946. kthread_run(ds_thread, NULL, "kldomd");
  947. return vio_register_driver(&ds_driver);
  948. }
  949. subsys_initcall(ds_init);